Institute of Forest Science, Kangwon National University, Chuncheon, 24341, Republic of Korea.
Department of Biomedical Science & Institute of Bioscience and Biotechnology, Kangwon National University, Chuncheon, 24341, Republic of Korea.
J Nanobiotechnology. 2022 Jul 2;20(1):222. doi: 10.1186/s12951-022-01402-z.
Cancer is one of the significant threats to human life. Although various latest technologies are currently available to treat cancer, it still accounts for millions of death each year worldwide. Thus, creating a need for more developed and novel technologies to combat this deadly condition. Nanoparticles-based cancer therapeutics have offered a promising approach to treat cancer effectively while minimizing adverse events. Among various nanoparticles, nanogold (AuNPs) are biocompatible and have proved their efficiency in treating cancer because they can reach tumors via enhanced permeability and retention effect. The size and shape of the AuNPs are responsible for their diverse therapeutic behavior. Thus, to modulate their therapeutic values, the AuNPs can be synthesized in various shapes, such as spheres, cages, flowers, shells, prisms, rods, clusters, etc. Also, attaching AuNPs with single or multiple targeting agents can facilitate the active targeting of AuNPs to the tumor tissue. The AuNPs have been much explored for photothermal therapy (PTT) to treat cancer. In addition to PTT, AuNPs-based nanoplatforms have been investigated for combinational multimodal therapies in the last few years, including photodynamic therapy, chemotherapy, radiotherapy, immunotherapy, etc., to ablate cancer cells. Thus, the present review focuses on the recent advancements in the functionalization of AuNPs-based nanoconstructs for cancer imaging and therapy using combinatorial multimodal approaches to treat various cancers.
癌症是人类生命的重大威胁之一。尽管目前有各种最新技术可用于治疗癌症,但它每年仍在全球造成数百万人死亡。因此,需要开发更先进和新颖的技术来对抗这种致命疾病。基于纳米粒子的癌症治疗方法为有效治疗癌症提供了一种很有前途的方法,同时最大限度地减少了不良反应。在各种纳米粒子中,纳米金(AuNPs)具有生物相容性,并已证明其在治疗癌症方面的效率,因为它们可以通过增强的通透性和保留效应到达肿瘤。AuNPs 的尺寸和形状决定了它们的多种治疗行为。因此,为了调节它们的治疗价值,可以将 AuNPs 合成各种形状,如球体、笼状、花状、壳状、棱镜状、棒状、簇状等。此外,将 AuNPs 与单个或多个靶向剂结合,可以促进 AuNPs 主动靶向肿瘤组织。AuNPs 已被广泛探索用于光热治疗(PTT)以治疗癌症。除了 PTT 之外,基于 AuNPs 的纳米平台近年来还被用于组合多模态治疗的研究,包括光动力疗法、化学疗法、放射疗法、免疫疗法等,以消融癌细胞。因此,本综述重点介绍了近年来利用组合多模态方法对基于 AuNPs 的纳米结构进行功能化的最新进展,用于癌症成像和治疗,以治疗各种癌症。